Crashworthiness of double-gradient hierarchical multi-cell hexagonal tubes under multi-load impacts

IF 4.4 3区 工程技术 Q1 ENGINEERING, CIVIL Archives of Civil and Mechanical Engineering Pub Date : 2024-11-17 DOI:10.1007/s43452-024-01087-1
Hailong Ran, Huilan Huang, Xiaolin Deng
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Abstract

The double-gradient hierarchical multi-cell hexagonal tube (DGHMHT) is introduced, featuring gradient designs in both axial and radial directions of the thin-walled tube. This study investigates the impact resistance of this structure under multi-load conditions using the Abaqus/Explicit finite element model, validated by quasi-static tests. Results indicate that the proposed DGHMHT exhibits superior resistance to overall buckling compared to single-gradient hexagonal laminated thin-walled tubes under multi-load impacts. In addition, it significantly reduces the initial peak force without compromising overall energy absorption, achieving a 74.92% reduction for the double-gradient structure compared to a 72.84% reduction for the single-gradient structure of the same order, respectively. Furthermore, increasing mass substantially enhances the structure’s energy-absorption capacity. Mass increment from 0.0729 to 0.3650 kg boosts Specific Energy Absorption (SEA) nearly tenfold, albeit with a corresponding rise in initial peak force. Examining impact angle effects reveals that the double-gradient structure is less susceptible to overall buckling as the angle increases, with the SEA of DGHMHB-3 surpassing that of hexagonal tube by 34.08% at a 10° impact angle. Analyzing the axial gradient length of DGHMHB-3 suggests that appropriately adjusting layer-height distribution can elevate the structure’s energy absorption and deformation resistance. These findings underscore the effectiveness of the proposed double-gradient hexagonal laminated thin-walled tubes in mitigating collisional impacts, particularly under multi-load conditions.

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双梯度分层多孔六角管在多载荷冲击下的耐撞性
本文介绍了双梯度分层多孔六角管(DGHMHT),其特点是在薄壁管的轴向和径向都采用了梯度设计。本研究使用 Abaqus/Explicit 有限元模型研究了这种结构在多载荷条件下的抗冲击性,并通过准静态试验进行了验证。结果表明,在多载荷冲击下,与单梯度六边形层压薄壁管相比,拟议的 DGHMHT 具有更优越的抗整体屈曲性能。此外,它还能在不影响整体能量吸收的情况下显著降低初始峰值力,双梯度结构与同阶单梯度结构相比,分别降低了 74.92% 和 72.84%。此外,质量的增加也大大提高了结构的能量吸收能力。质量从 0.0729 千克增加到 0.3650 千克,比能量吸收(SEA)提高了近十倍,尽管初始峰值力也相应增加。对撞击角效应的研究表明,随着撞击角的增大,双梯度结构不易发生整体屈曲,在撞击角为 10° 时,DGHMHB-3 的比能量吸收比六角管高出 34.08%。对 DGHMHB-3 轴向梯度长度的分析表明,适当调整层高分布可以提高结构的能量吸收和抗变形能力。这些研究结果表明,所提出的双梯度六边形层压薄壁管在减轻碰撞冲击方面非常有效,尤其是在多负载条件下。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Archives of Civil and Mechanical Engineering
Archives of Civil and Mechanical Engineering 工程技术-材料科学:综合
CiteScore
6.80
自引率
9.10%
发文量
201
审稿时长
4 months
期刊介绍: Archives of Civil and Mechanical Engineering (ACME) publishes both theoretical and experimental original research articles which explore or exploit new ideas and techniques in three main areas: structural engineering, mechanics of materials and materials science. The aim of the journal is to advance science related to structural engineering focusing on structures, machines and mechanical systems. The journal also promotes advancement in the area of mechanics of materials, by publishing most recent findings in elasticity, plasticity, rheology, fatigue and fracture mechanics. The third area the journal is concentrating on is materials science, with emphasis on metals, composites, etc., their structures and properties as well as methods of evaluation. In addition to research papers, the Editorial Board welcomes state-of-the-art reviews on specialized topics. All such articles have to be sent to the Editor-in-Chief before submission for pre-submission review process. Only articles approved by the Editor-in-Chief in pre-submission process can be submitted to the journal for further processing. Approval in pre-submission stage doesn''t guarantee acceptance for publication as all papers are subject to a regular referee procedure.
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